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CRISPR/Cas9 facilitates investigation of neural circuit disease using human iPSCs: mechanism of epilepsy caused by an SCN1A loss-of-function mutation

兴奋性突触后电位 抑制性突触后电位 清脆的 神经科学 加巴能 突触后电位 诱导多能干细胞 突变 生物 癫痫 遗传学 基因 受体 胚胎干细胞
作者
Jianche Liu,Caixia Gao,Wenli Chen,Wenbo Ma,X Li,Yunfeng Shi,Hantao Zhang,L Zhang,Yue‐Sheng Long,Haiyan Xu,Xiaogang Guo,Song Deng,Xiao‐Xin Yan,Deshan Yu,Guangjin Pan,Yiguang Chen,L. Lai,Wei‐Ping Liao,Zheng Li
出处
期刊:Translational Psychiatry [Springer Nature]
卷期号:6 (1): e703-e703 被引量:95
标识
DOI:10.1038/tp.2015.203
摘要

Abstract Mutations in SCN1A , the gene encoding the α subunit of Nav1.1 channel, can cause epilepsies with wide ranges of clinical phenotypes, which are associated with the contrasting effects of channel loss-of-function or gain-of-function. In this project, CRISPR/Cas9- and TALEN-mediated genome-editing techniques were applied to induced pluripotent stem cell (iPSC)-based-disease model to explore the mechanism of epilepsy caused by SCN1A loss-of-function mutation. By fluorescently labeling GABAergic subtype in iPSC-derived neurons using CRISPR/Cas9, we for the first time performed electrophysiological studies on SCN1A -expressing neural subtype and monitored the postsynaptic activity of both inhibitory and excitatory types. We found that the mutation c.A5768G, which led to no current of Nav1.1 in exogenously transfected system, influenced the properties of not only Nav current amount, but also Nav activation in Nav1.1-expressing GABAergic neurons. The two alterations in Nav further reduced the amplitudes and enhanced the thresholds of action potential in patient-derived GABAergic neurons, and led to weakened spontaneous inhibitory postsynaptic currents (sIPSCs) in the patient-derived neuronal network. Although the spontaneous excitatory postsynaptic currents (sEPSCs) did not change significantly, when the frequencies of both sIPSCs and sEPSCs were further analyzed, we found the whole postsynaptic activity transferred from the inhibition-dominated state to excitation in patient-derived neuronal networks, suggesting that changes in sIPSCs alone were sufficient to significantly reverse the excitatory level of spontaneous postsynaptic activity. In summary, our findings fill the gap of our knowledge regarding the relationship between SCN1A mutation effect recorded on exogenously transfected cells and on Nav1.1-expressing neurons, and reveal the physiological basis underlying epileptogenesis caused by SCN1A loss-of-function mutation.
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